Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools

The pharmacodynamic activity on the organic structure of benzoyl peroxide has been analysed by molecular spectroscopical tools (IR, Raman, nuclear magnetic resonance and UV–visible). Simultaneously, the results obtained in the experimental process are verified by performing Quantum Gaussian computat...

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Main Authors: R. Aarthi, S. Ramalingam, S. Periandy, K. Senthil Kannan
Format: Article
Language:English
Published: Taylor & Francis Group 2018-01-01
Series:Journal of Taibah University for Science
Subjects:
Online Access:http://dx.doi.org/10.1080/16583655.2018.1451116
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spelling doaj-65bce9d5951443b5aed5b9118894f39a2020-11-24T23:57:27ZengTaylor & Francis GroupJournal of Taibah University for Science1658-36552018-01-0112110412210.1080/16583655.2018.14511161451116Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational toolsR. Aarthi0S. Ramalingam1S. Periandy2K. Senthil Kannan3A.V.C. CollegeA.V.C. CollegeKanchi Mamunivar Centre for PG StudiesDean R & D, EGS Pillay Arts and Science CollegeThe pharmacodynamic activity on the organic structure of benzoyl peroxide has been analysed by molecular spectroscopical tools (IR, Raman, nuclear magnetic resonance and UV–visible). Simultaneously, the results obtained in the experimental process are verified by performing Quantum Gaussian computational calculations with higher-order basis sets. The actual positions of internal compositions and purity of the compound are verified with the observations of fundamental and group frequency of the recorded pattern of the FT-IR and FT-Raman spectra. The chemical environment of different carbons existing in various entities for approving a drug property is keenly identified and distinguished. The energy level degeneracy among different Frontier molecular orbitals is viewed from the orbital overlapping interaction contour. The biological activity of the present compound is emphasized and correlated with the hyperpolarizability profile of the internal coordinate system of a molecular structure arrangement. The involvement of non-bonding molecular orbital for the inducement of drug reactivity is monitored from the observation of cluster electron transitions. The Gibbs energy for chemical reaction with augmented temperature is relatively discussed, and the continuum of chemical reaction is observed.http://dx.doi.org/10.1080/16583655.2018.1451116Benzoyl peroxidenon-bonding molecular orbitalorbital overlapping interactionGibbs energycluster electron transitions
collection DOAJ
language English
format Article
sources DOAJ
author R. Aarthi
S. Ramalingam
S. Periandy
K. Senthil Kannan
spellingShingle R. Aarthi
S. Ramalingam
S. Periandy
K. Senthil Kannan
Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
Journal of Taibah University for Science
Benzoyl peroxide
non-bonding molecular orbital
orbital overlapping interaction
Gibbs energy
cluster electron transitions
author_facet R. Aarthi
S. Ramalingam
S. Periandy
K. Senthil Kannan
author_sort R. Aarthi
title Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
title_short Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
title_full Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
title_fullStr Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
title_full_unstemmed Molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
title_sort molecular structure-associated pharmacodynamic investigation on benzoyl peroxide using spectroscopic and quantum computational tools
publisher Taylor & Francis Group
series Journal of Taibah University for Science
issn 1658-3655
publishDate 2018-01-01
description The pharmacodynamic activity on the organic structure of benzoyl peroxide has been analysed by molecular spectroscopical tools (IR, Raman, nuclear magnetic resonance and UV–visible). Simultaneously, the results obtained in the experimental process are verified by performing Quantum Gaussian computational calculations with higher-order basis sets. The actual positions of internal compositions and purity of the compound are verified with the observations of fundamental and group frequency of the recorded pattern of the FT-IR and FT-Raman spectra. The chemical environment of different carbons existing in various entities for approving a drug property is keenly identified and distinguished. The energy level degeneracy among different Frontier molecular orbitals is viewed from the orbital overlapping interaction contour. The biological activity of the present compound is emphasized and correlated with the hyperpolarizability profile of the internal coordinate system of a molecular structure arrangement. The involvement of non-bonding molecular orbital for the inducement of drug reactivity is monitored from the observation of cluster electron transitions. The Gibbs energy for chemical reaction with augmented temperature is relatively discussed, and the continuum of chemical reaction is observed.
topic Benzoyl peroxide
non-bonding molecular orbital
orbital overlapping interaction
Gibbs energy
cluster electron transitions
url http://dx.doi.org/10.1080/16583655.2018.1451116
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AT sramalingam molecularstructureassociatedpharmacodynamicinvestigationonbenzoylperoxideusingspectroscopicandquantumcomputationaltools
AT speriandy molecularstructureassociatedpharmacodynamicinvestigationonbenzoylperoxideusingspectroscopicandquantumcomputationaltools
AT ksenthilkannan molecularstructureassociatedpharmacodynamicinvestigationonbenzoylperoxideusingspectroscopicandquantumcomputationaltools
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